Wang Shuai, Huang Yi, Qiang Yu, Wu Mengjiao, Liang Shanshan, Wang Jianyu, Fang Chuanjie, Zhu Liping
MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou 310027, China; School of Physics, East China University of Science and Technology, Shanghai, 200237, China; Center for Healthcare Materials, Shaoxing Institute, Zhejiang University, Shaoxing 312000, China.
College of Opto-Mechanical Engineering, Zhejiang A&F University, Hangzhou 311300, China.
Water Res. 2025 Feb 15;270:122855. doi: 10.1016/j.watres.2024.122855. Epub 2024 Nov 26.
Controllable ion transport and precise ion sieving are crucial for sustainable water treatment and resource recovery. 2D materials, including graphene oxide (GO) with tunable nanochannels, are emerging as ideal material platforms to develop ion sieving membranes. However, accurate ion sieving remains challenging due to the swollen and enlarged interlayer spacing of GO membranes in aqueous solution, resulting in the non-selective of small ions. Here, we reformed the GO nanosheets by physical reduction method and modified them with negatively charged molecule chains. The nanochannel sizes and electronegativity of the stacked 2D membranes were precisely controlled simultaneously. As a result, 2D nanochannel membrane with fast permeability, high efficiency and accurate Cl/SO separation was constructed. The characterization and performance analysis further proved that the interlayer spacing and electrification of 2D nanochannels are strongly related to ion sieving. By precisely adjusting the synergy between the two, Cl/SO selectivity up to 91.83 with Cl permeation rate of 1.03 mol mh was achieved, which is superior to state-of-the-art ion sieving membranes. Our study provides new insights into understanding ion separation mechanisms within nanochannels and enables the development for the precise construction of nanochannels to manipulate the selective transport of ions.
可控离子传输和精确离子筛分对于可持续水处理和资源回收至关重要。二维材料,包括具有可调纳米通道的氧化石墨烯(GO),正成为开发离子筛膜的理想材料平台。然而,由于GO膜在水溶液中层间距膨胀和增大,导致小离子无选择性,精确离子筛分仍然具有挑战性。在此,我们通过物理还原法对GO纳米片进行了改性,并用带负电荷的分子链对其进行了修饰。同时精确控制了堆叠二维膜的纳米通道尺寸和电负性。结果,构建了具有快速渗透性、高效率和精确的Cl/SO分离性能的二维纳米通道膜。表征和性能分析进一步证明,二维纳米通道的层间距和带电性与离子筛分密切相关。通过精确调节两者之间的协同作用,实现了Cl/SO选择性高达91.83,Cl渗透速率为1.03 mol m⁻² h⁻¹,优于现有离子筛膜。我们的研究为理解纳米通道内的离子分离机制提供了新的见解,并为精确构建纳米通道以控制离子的选择性传输的发展提供了可能。